Fundamental Limitations on Communication over a Quantum Network
Junjing Xing, Tianfeng Feng, Zhaobing Fan, Haitao Ma, Kishor Bharti,, Dax Enshan Koh, Yunlong Xiao

TL;DR
This paper introduces a framework for analyzing temporal entanglement in quantum networks, revealing its critical role in improving communication protocols, extending distances, and enhancing quantum teleportation performance.
Contribution
It pioneers the concept of temporal entanglement, demonstrating its influence on quantum communication and providing methods to leverage it for better network performance.
Findings
Enhanced quantum teleportation using temporal entanglement
Exponential growth in quantum repeater efficiency
Doubling of communication distance in certain noise models
Abstract
Entanglement, a fundamental feature of quantum mechanics, has long been recognized as a valuable resource in enabling secure communications and surpassing classical limits. However, previous research has primarily concentrated on static entangled states generated at a single point in time, overlooking the crucial role of the quantum dynamics responsible for creating such states. Here, we propose a framework for investigating entanglement across multiple time points, termed temporal entanglement, and demonstrate that the performance of a quantum network in transmitting information is inherently dependent on its temporal entanglement. Through case studies, we showcase the capabilities of our framework in enhancing conventional quantum teleportation and achieving exponential performance growth in the protocol of quantum repeaters. Additionally, our framework effectively doubles the…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Quantum Mechanics and Applications
